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An MMAE failure detection system for the F-16

机译:用于F-16的MMAE故障检测系统

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A multiple model adaptive estimation (MMAE) algorithm is implemented with the fully nonlinear six-degree-of-motion, Simulation Rapid-Prototyping facility (SRF) VISTA F-16 software simulation tool. The algorithm is composed of a bank of Kalman filters modeled to match particular hypotheses of the real world. Each presumes a single failure in one of the flight-critical actuators, or sensors, and one presumes no failure. For dual failures, a hierarchical structure is used to keep the number of on-line filters to a minimum. The algorithm is demonstrated to be capable of identifying flight-critical aircraft actuator and sensor failures at a low dynamic pressure (20,000 ft, 0.4 Mach). Research includes single and dual complete failures. Tuning methods for accommodating model mismatch, including addition of discrete dynamics pseudonoise and measurement pseudonoise, are discussed and demonstrated. Scalar residuals within each filter are also examined and characterized for possible use as an additional failure declaration voter. An investigation of algorithm performance off the nominal design conditions is accomplished as a first step towards full flight envelope coverage.
机译:多模型自适应估计(MMAE)算法是通过完全非线性的六运动度仿真快速原型制作工具(SRF)VISTA F-16软件仿真工具实现的。该算法由一组Kalman滤波器组成,这些滤波器经过建模以匹配现实世界的特定假设。每个假定在飞行关键致动器或传感器之一中发生单个故障,并且假定没有故障。对于双重故障​​,使用分层结构将在线过滤器的数量保持在最少。该算法被证明能够在低动态压力(20,000 ft,0.4 Mach)下识别对飞行至关重要的飞机执行器和传感器故障。研究包括一次和两次完全失败。讨论并演示了适应模型失配的调整方法,包括添加离散动态伪噪声和测量伪噪声。还检查每个滤波器内的标量残差,并对其特性进行表征,以用作额外的故障声明表决器。对标称设计条件的算法性能的研究是朝着全面飞行包线覆盖范围迈出的第一步。

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